DocumentCode :
966562
Title :
3-D FEM Modeling and Fabrication of Circular Photonic Crystal Microcavity
Author :
Massaro, Alessandro ; Errico, Vito ; Stomeo, Tiziana ; Cingolani, Roberto ; Salhi, Abdelmajid ; Passaseo, Adriana ; De Vittorio, Massimo
Author_Institution :
Nat. Nanotechnol. Lab., Univ. del Salento, Lecce
Volume :
26
Issue :
16
fYear :
2008
Firstpage :
2960
Lastpage :
2968
Abstract :
In this paper, we study an unconventional kind of quasi-three-dimensional (3-D) photonic crystal (PhC) with circular lattice pattern: it consists of air holes in a GaAs material (n=3.408) along circular concentric lines. This particular PhC geometry has peculiar behavior if compared with the traditional square and triangular lattices, but it is difficult to model by using conventional numerical approaches such as wave expansion method. The resonance and the radiation aspects are analyzed by the 3-D finite-element method (FEM). The model, based on a scattering matrix approach, considers the cavity resonance frequency and evaluates the input-output relationship by enclosing the photonic crystal slab (PhCS) in a black box in order to define the responses at different input-output ports. The scattering matrix method gives important information about the frequency responses of the passive 3-D crystal in the 3-D spatial domain. A high sensitivity of the scattering parameters to the variation of the geometrical imperfection is also observed. The model is completed by the quality factor (Q-factor) estimation. We fabricated the designed circular photonic crystal over a slab membrane waveguide embedding InAs/GaAs quantum dots emitting around 1.28 mum. Good agreement between numerical and experimental results was found, thus validating the 3-D FEM full-wave investigation.
Keywords :
III-V semiconductors; Q-factor; S-matrix theory; cavity resonators; finite element analysis; gallium arsenide; indium compounds; microcavities; optical fabrication; optical lattices; optical materials; optical waveguides; photonic crystals; semiconductor quantum dots; 3-D FEM modeling; GaAs material; InAs-GaAs; InAs-GaAs quantum dots; cavity resonance frequency; circular concentric lines; circular lattice pattern; circular photonic crystal microcavity fabrication; finite-element method; frequency response; geometrical imperfection; quality factor; scattering matrix; slab membrane waveguide; Electromagnetic scattering; Fabrication; Gallium arsenide; Lattices; Microcavities; Particle scattering; Photonic crystals; Resonance; Slabs; Transmission line matrix methods; Circular lattice; S-matrix; finite-element method (FEM) modeling; photonic crystal;
fLanguage :
English
Journal_Title :
Lightwave Technology, Journal of
Publisher :
ieee
ISSN :
0733-8724
Type :
jour
DOI :
10.1109/JLT.2008.925035
Filename :
4660237
Link To Document :
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